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“A 7-Year Life Cycle For Two \Textit{Chironomus Species In Arctic Alaskan Tundra Ponds (Diptera: Chironomidae)”. Canadian Journal Of Zoology 60. Canadian Journal Of Zoology (1982): 58–70. doi:10.1139/z82-008.
. “The Abiotic And Biotic Controls Of Arctic Lakefood Webs: A Multifaceted Approach To Quantifying Trophic Structure And Function”. Watershed Sciences. Watershed Sciences. Utah State University, 2018. https://digitalcommons.usu.edu/etd/7293.
. “Above- And Belowground Responses Of Arctic Tundra Ecosystems To Altered Soil Nutrients And Mammalian Herbivory”. Ecology 93, no. 7. Ecology (2012): 1683-1694. doi:10.1890/11-1631.1.
. “Above- And Belowground Responses To Long-Term Herbivore Exclusion”. Arctic, Antarctic, And Alpine Research 52. Arctic, Antarctic, And Alpine Research (2020): 109-119. doi:10.1080/15230430.2020.1733891.
. “Access Pipes For Sampling Through Thick Ice”. Hydrobiologia 240. Hydrobiologia (1992): 267-269. doi:10.1007/Bf00013468.
. “Active Layer Freeze-Thaw And Water Storage Dynamics In Permafrost Environments Inferred From Insar”. Remote Sensing Of Environment 248. Remote Sensing Of Environment (2020): 112007. doi:10.1016/j.rse.2020.112007.
. “Active Layer Groundwater Flow: The Interrelated Effects Of Stratigraphy, Thaw, And Topography”. Water Resources Research 55. Water Resources Research (2019): 6555–6576. doi:10.1029/2018WR024636.
. “Adding 15N Tracers To Ecosystem Experiments”. In Stable Isotopes In The Biosphere, 171-192. Stable Isotopes In The Biosphere. Kyoto: Kyoto University Press, 1995.
. “Adrenocortical Responses To Stress On The Leading Edge Of A Northward Range Expansion In White-Crowned Sparrows”. Society Of Integrative And Comparative Biology’s (Sicb) Annual Meeting. Society Of Integrative And Comparative Biology’s (Sicb) Annual Meeting. Austin, TX, 2014.
. “Advantages Of A Two Band Evi Calculated From Solar And Photosynthetically Active Radiation Fluxes”. Agricultural And Forest Meteorology 149, no. 9. Agricultural And Forest Meteorology (2009): 1560-1563. doi:10.1016/j.agrformet.2009.03.016.
. “Aggregating Fine-Scale Ecological Knowledge To Model Coarser-Scale Attributes Of Ecosystems”. Ecological Applications 2, no. 1. Ecological Applications (1992): 55-70. doi:10.2307/1941889.
. “Airborne Laser Scanning And Spectral Remote Sensing Give A Bird's Eye Perspective On Arctic Tundra Breeding Habitat At Multiple Spatial Scales”. Remote Sensing Of Environment 184. Remote Sensing Of Environment (2016): 337–349. doi:10.1016/j.rse.2016.07.012.
. Alaska’s Changing Arctic: Ecological Consequences For Tundra, Streams And Lakes. Long-Term Ecological Research Network Series. Long-Term Ecological Research Network Series. New York, NY: Oxford University Press, 2014. doi:10.1093/acprof:osobl/9780199860401.001.0001.
. Alaska's Changing Arctic: Ecological Consequences For Tundra, Streams And Lakes. Long-Term Ecological Research Network Series. Long-Term Ecological Research Network Series. New York, NY: Oxford University Press, 2014. doi:10.1093/acprof:osobl/9780199860401.001.0001.
. “Alkenones And Polycyclic Aromatic Hydrocarbons Record Temperature And Fire In Northeastern Alaskan Lakes (Invited Speaker)”. Geological Society Of America Northeastern Section Meeting. Geological Society Of America Northeastern Section Meeting. Lancaster, PA, 2014. https://gsa.confex.com/gsa/2014NE/webprogram/Paper236543.html.
. “Alleviation Of Nutrient Co‐Limitation Induces Regime Shifts In Post‐Fire Community Composition And Productivity In Arctic Tundra”. Global Change Biology. Global Change Biology (2021). doi:10.1111/gcb.15646.
. “Amino Acid Cycling In Plankton And Soil Microbes Studied With Radioisotopes: Measured Amino Acids In Soil Do Not Reflect Bioavailability”. Biogeochemistry 107, no. 1-3. Biogeochemistry (2012): 339-360. doi:10.1007/s10533-010-9556-9.
. “Analysis Of Co2, Temperature, And Moisture Effects On Carbon Storage In Alaskan Arctic Tundra Using A General Ecosystem Model”. In Global Change And Arctic Terrestrial Ecosystems, 349-364. Global Change And Arctic Terrestrial Ecosystems. NY: Springer-Verlag, 1997.
. “Analyzing Spectral Signatures As Rapid Indicators Of Leaf Biochemistry In Plants Of The Arctic Tundra”. Department Of Ecology, Evolution And Environmental Biology. Department Of Ecology, Evolution And Environmental Biology. Columbia University, 2015.
. “Application Of Molecular Knowledge Of Microbes To Studies Of Ecological Processes: Why The Integration Is So Challenging”. In Bulletin Of The Ecological Society Of America, 91:68-79. Bulletin Of The Ecological Society Of America, 2010. http://dx.doi.org/10.1890/0012-9623-91.1.68.
. “An Approach To Modeling Resource Optimization For Substitutable And Interdependent Resources”. Ecological Modelling 425. Ecological Modelling (2020): 109033. doi:10.1016/j.ecolmodel.2020.109033.
. “An Approach To Understanding Hydrologic Connectivity On The Hillslope And The Implications For Nutrient Transport”. Global Biogeochemical Cycles 17, no. 4. Global Biogeochemical Cycles (2003): 1105. doi:10.1029/2003GB002041.
. “An Approach To Using Snow Areal Depletion Curves Inferred From Modis And Its Application For Land Surface Modelling In Alaska”. Hydrological Processes 19, no. 14. Hydrological Processes (2005): 1755-2774. doi:10.1002/hyp.5784.
. “Arctic”. In Physiological Ecology Of North American Plant Communities, 16-40. Physiological Ecology Of North American Plant Communities. New York, NY: Chapman and Hail, 1985. doi:10.1007/978-94-009-4830-3_2.
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